Multiple faults detection in doubly-fed induction generator wind turbine using artificial neural network
Noor Fazliana Fadzail,
Samila Mat Zali,
Ernie Che Mid
Abstract:The development of fault detection methods in wind turbine (WT), especially for single fault detection, is continuously increasing. However, the rapid growth of fault detection in WT leads to another challenge where multiple faults can occur. The single fault detection method in WT is no longer reliable, especially when multiple faults occur simultaneously. Therefore, multiple faults detection in doubly-fed induction generators (DFIG) WT was proposed using an artificial neural networks (ANN) model. These multi… Show more
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